Determination of Volatile Organic Compounds in Ambient Air of Pasir Gudang by using Gas Chromatogrpahy-Mass Spectrometry

Aina Syahira Rosli, Faizuan Abdullah

Abstract


Accumulation of VOCs in ambient air affects air quality through the secondary organic aerosol and generation of surface level ozone. Hence, the study of determination of VOCs in ambient air was conducted to monitor the VOCs content in Pasir Gudang industrial area. The study was performed at the affected school during Sungai Kim Kim illegal chemical waste dumping tragedy, Sekolah Kebangsaan Taman Pasir Puteh, Pasir Gudang in January 2020. Gas chromatography–mass spectrometry (GC/MS) was employed to measure the VOCs content especially benzene, toluene, ethylbenzene and xylene. Sorbent cartridge was used to sampled the VOCs in the ambient air via active and passive sampling method. Both quantitative and qualitative analysis of VOCs showed low level of VOCs concentration with 96.36 ± 2.52 percent of recovery. The concentration of VOCs at all sampling point were below limit of range (LOR), it shows that the compounds are below the instrument sensitivity. Limits of detection (LOD) for benzene, toluene, ethylbenzene and o-xylene was 0.05 μg/m3 meanwhile for m,p-xylene is 0.1 μg/m3. Meanwhile, limit of quantification (LOQ) for benzene, toluene, ethylbenzene and o-xylene is 0.64 μg/m3 meanwhile for m,p-xylene is 1.3 μg/m3. This study concludes that the VOCs especially BTEX were not detected using the active and passive sampling technique using sorbent cartridge.

Keywords


Volatile Organic Compound (VOCs); BTEX; Gas Chromatography-Mass Spectrometry (GC-MS); Thermal desorption (TD); Pasir Gudang

Full Text:

PDF

References


Caselli, M., Gennaro, G. D., Marzocca, A., Trizio, L., & Tutino, M. (2010). Assessment of the impact of the vehicular traffic on BTEX concentration in ring roads in urban areas of Bari (Italy). Chemosphere, 81(3), 306–311.

Cetin E. Odabasi M. Seyfioglu R.(2003 ). Ambient volatile organic compound (VOC) concentrations around a petrochemical complex and a petroleum refinery. Sci. Total Environ. 312:103.

De Koning, S., Janssen, H.-G., & Brinkman, U. A. T. (2009). Modern Methods of Sample Preparation for GC Analysis. Chromatographia, 69(S1), 33–78.

Ibrahim, I. Z., Chong, W. T., Yusoff, S., Wang, C., Xiang, X., & Muzammil, W. K. (2019). Evaluation of common indoor air pollutant reduction by a botanical indoor air biofilter system. Indoor and Built Environment.

Pankow, James F., et al. “Determination of a Wide Range of Volatile Organic Compounds in Ambient Air Using Multisorbent Adsorption/Thermal Desorption and Gas Chromatography/Mass Spectrometry.” Analytical Chemistry, vol. 70, no. 24, 1998, pp. 5213–5221.

Rabaud, N. E., Ebeler, S. E., Ashbaugh, L. L., & Flocchini, R. G. (2002). The Application of Thermal Desorption GC/MS with Simultaneous Olfactory Evaluation for the Characterization and Quantification of Odor Compounds from a Dairy. Journal of Agricultural and Food Chemistry, 50(18), 5139–5145.

Ramírez N., Marcé R. M., & Borrull F. (2011). Determination of volatile organic compounds in industrial wastewater plant air emissions by multi-sorbent adsorption and thermal desorption-gas chromatography-mass spectrometry. International Journal of Environmental Analytical Chemistry, 91(10), 911–928.


Refbacks

  • There are currently no refbacks.


Copyright (c) 2020 eProceedings Chemistry

Creative Commons License
This work is licensed under a Creative Commons Attribution-NonCommercial 4.0 International License.

Copyright © 2016 Department of Chemistry, Universiti Teknologi Malaysia.

Disclaimer : This website has been updated to the best of our knowledge to be accurate. However, Universiti Teknologi Malaysia shall not be liable for any loss or damage caused by the usage of any information obtained from this web site.
Best viewed: Mozilla Firefox 4.0 & Google Chrome at 1024 × 768 resolution.